Wavelet analysis of monopole strength in highly deformed $^{24}$Mg

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Main Authors: Bahini, A., Nesterenko, V. O., von Neumann-Cosel, P., Reinhard, P. -G., Carter, J., Ashurko, N. A., Neveling, R., Repko, A., Usman, I. T.
Format: Preprint
Published: 2025
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author Bahini, A.
Nesterenko, V. O.
von Neumann-Cosel, P.
Reinhard, P. -G.
Carter, J.
Ashurko, N. A.
Neveling, R.
Repko, A.
Usman, I. T.
author_facet Bahini, A.
Nesterenko, V. O.
von Neumann-Cosel, P.
Reinhard, P. -G.
Carter, J.
Ashurko, N. A.
Neveling, R.
Repko, A.
Usman, I. T.
contents Experimental data on $α$-particle inelastic scattering for monopole excitations in $^{24}$Mg in the excitation-energy region $E_{\rm x}$$=$$9$$-$$25$ MeV, obtained at the iThemba Laboratory for Accelerator Based Sciences (iThemba LABS), have been analyzed within a fully self-consistent quasiparticle random-phase approximation (QRPA) framework using two Skyrme parametrizations. A good overall agreement with the experimental data is achieved, particularly with the SkP$^δ$ force, which corresponds to a low nuclear incompressibility of $K_{\infty}$$=$$202$ MeV. Extraction of energy scales, by means of wavelet analysis, characterizing the observed fine structure of the isoscalar giant monopole resonance (ISGMR) as well as the low-energy region $10$$-$$18$ MeV of the deformation-induced monopole-quadrupole coupling (MQC) in order to investigate the damping mechanism contributing to their decay widths. Characteristic energy scales are extracted from the fine structure using continuous wavelet transforms. The experimental results are compared to QRPA calculations employing the Skyrme parameterizations SkP$^δ$ and SVbas. A significant, if not decisive, impact of the MQC strength on the wavelet power spectra is observed across the entire excitation-energy range of $10$$-$$24$ MeV. Wavelet features derived from the QRPA and from unperturbed two-quasiparticle (2qp) monopole strengths are compared. The results demonstrate that the residual interaction plays a key role in reproducing realistic wavelet powers and characteristic energy scales. Overall, a continuous range of scales $δE$$=$$200$$-$$1000$ keV is obtained rather than distinct isolated scales. The deformation softness of $^{24}$Mg is found to significantly influence both the monopole strength distribution and the wavelet characteristics.
format Preprint
id arxiv_https___arxiv_org_abs_2511_21880
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Wavelet analysis of monopole strength in highly deformed $^{24}$Mg
Bahini, A.
Nesterenko, V. O.
von Neumann-Cosel, P.
Reinhard, P. -G.
Carter, J.
Ashurko, N. A.
Neveling, R.
Repko, A.
Usman, I. T.
Nuclear Experiment
Nuclear Theory
Experimental data on $α$-particle inelastic scattering for monopole excitations in $^{24}$Mg in the excitation-energy region $E_{\rm x}$$=$$9$$-$$25$ MeV, obtained at the iThemba Laboratory for Accelerator Based Sciences (iThemba LABS), have been analyzed within a fully self-consistent quasiparticle random-phase approximation (QRPA) framework using two Skyrme parametrizations. A good overall agreement with the experimental data is achieved, particularly with the SkP$^δ$ force, which corresponds to a low nuclear incompressibility of $K_{\infty}$$=$$202$ MeV. Extraction of energy scales, by means of wavelet analysis, characterizing the observed fine structure of the isoscalar giant monopole resonance (ISGMR) as well as the low-energy region $10$$-$$18$ MeV of the deformation-induced monopole-quadrupole coupling (MQC) in order to investigate the damping mechanism contributing to their decay widths. Characteristic energy scales are extracted from the fine structure using continuous wavelet transforms. The experimental results are compared to QRPA calculations employing the Skyrme parameterizations SkP$^δ$ and SVbas. A significant, if not decisive, impact of the MQC strength on the wavelet power spectra is observed across the entire excitation-energy range of $10$$-$$24$ MeV. Wavelet features derived from the QRPA and from unperturbed two-quasiparticle (2qp) monopole strengths are compared. The results demonstrate that the residual interaction plays a key role in reproducing realistic wavelet powers and characteristic energy scales. Overall, a continuous range of scales $δE$$=$$200$$-$$1000$ keV is obtained rather than distinct isolated scales. The deformation softness of $^{24}$Mg is found to significantly influence both the monopole strength distribution and the wavelet characteristics.
title Wavelet analysis of monopole strength in highly deformed $^{24}$Mg
topic Nuclear Experiment
Nuclear Theory
url https://arxiv.org/abs/2511.21880